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感受野异质性的统一理论预测海马体空间调谐。

A unifying theory of receptive field heterogeneity predicts hippocampal spatial tuning.

作者信息

Cohen Zach, Drugowitsch Jan

机构信息

Department of Neurobiology, Harvard Medical School.

Kempner Institute, Harvard University.

出版信息

bioRxiv. 2025 Jul 31:2025.07.26.666958. doi: 10.1101/2025.07.26.666958.

DOI:10.1101/2025.07.26.666958
PMID:40766478
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC12324321/
Abstract

Neural populations exhibit receptive fields that vary in their sizes and shapes. Despite the prevalence of such tuning heterogeneity, we lack a unified theory of its computational benefits. Here, we present a framework that unifies and extends previous theories, finding that receptive field heterogeneity generally increases the information encoded in population activity. The information gain depends on heterogeneity in receptive field size, shape, and on the dimensionality of the encoded quantity. For populations encoding two-dimensional quantities, such as place cells encoding allocentric spatial position, our theory predicts that both size and shape receptive field heterogeneity are necessary to induce information gain, whereas size heterogeneity alone is insufficient. We thus turned to CA1 hippocampal activity to test our theoretical predictions-in particular, to measure shape heterogeneity, which has previously received little attention. To overcome limitations of traditional methods for estimating place cell tuning, we developed a fully probabilistic approach for measuring size and shape heterogeneity, in which tuning estimates were strategically weighted by explicitly measured uncertainty arising from biased or incomplete traversals of the environment. Our method furnished evidence that hippocampal receptive fields indeed exhibit strong degrees of size and shape heterogeneity, abiding by the normative predictions of our theory. Overall, our work makes novel predictions about the relative benefits of receptive field heterogeneities beyond our application to place cells, and provides a principled technique for testing them.

摘要

神经群体表现出感受野大小和形状各异的情况。尽管这种调谐异质性普遍存在,但我们缺乏关于其计算益处的统一理论。在此,我们提出一个框架,该框架统一并扩展了先前的理论,发现感受野异质性通常会增加群体活动中编码的信息。信息增益取决于感受野大小、形状的异质性以及编码量的维度。对于编码二维量的群体,例如编码以自我为中心的空间位置的位置细胞,我们的理论预测,感受野大小和形状的异质性对于诱导信息增益都是必要的,而仅大小异质性是不够的。因此,我们转向CA1海马体活动来测试我们的理论预测——特别是测量形状异质性,而形状异质性此前很少受到关注。为了克服传统方法估计位置细胞调谐的局限性,我们开发了一种用于测量大小和形状异质性的完全概率方法,其中调谐估计通过明确测量因环境遍历有偏差或不完整而产生的不确定性进行策略性加权。我们的方法提供了证据,表明海马体感受野确实表现出很强程度的大小和形状异质性,符合我们理论的规范性预测。总体而言,我们的工作对感受野异质性的相对益处做出了超出我们对位置细胞应用的新预测,并提供了一种用于测试它们的有原则的技术。

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